UMR_S 1193, INSERM/Université Paris Saclay, F-94800 Villejuif, France.
Fédération Hospitalo-Universitaire (FHU) Hépatinov, F-94800 Villejuif, France.
Cells. 2023 Mar 10;12(6):865. doi: 10.3390/cells12060865.
Liver cell therapy and in vitro models require functional human hepatocytes, the sources of which are considerably limited. Human induced pluripotent stem cells (hiPSCs) represent a promising and unlimited source of differentiated human hepatocytes. However, when obtained in two-dimensional (2D) cultures these hepatocytes are not fully mature and functional. As three-dimensional culture conditions offer advantageous strategies for differentiation, we describe here a combination of three-dimensional (3D) approaches enabling the successful differentiation of functional hepatocytes from hiPSCs by the encapsulation of hiPSC-derived hepatoblasts in alginate beads of preformed aggregates. The resulting encapsulated and differentiated hepatocytes (E-iHep-Orgs) displayed a high level of albumin synthesis associated with the disappearance of α-fetoprotein (AFP) synthesis, thus demonstrating that the E-iHep-Orgs had reached a high level of maturation, similar to that of adult hepatocytes. Gene expression analysis by RT-PCR and immunofluorescence confirmed this maturation. Further functional assessments demonstrated their enzymatic activities, including lactate and ammonia detoxification, as well as biotransformation activities of Phase I and Phase II enzymes. This study provides proof of concept regarding the benefits of combining three-dimensional techniques (guided aggregation and microencapsulation) with liver differentiation protocols as a robust approach to generate mature and functional hepatocytes that offer a permanent and unlimited source of hepatocytes. Based on these encouraging results, our combined conditions to produce mature hepatocytes from hiPSCs could be extended to liver tissue engineering and bioartificial liver (BAL) applications at the human scale for which large biomasses are mandatory.
肝细胞治疗和体外模型需要功能性的人类肝细胞,而其来源相当有限。人类诱导多能干细胞(hiPSCs)是一种很有前途且无限的分化为人类肝细胞的来源。然而,当在二维(2D)培养中获得时,这些肝细胞并不完全成熟和功能齐全。由于三维(3D)培养条件为分化提供了有利的策略,我们在这里描述了一种组合的 3D 方法,通过将 hiPSC 来源的肝母细胞包埋在预先形成的聚集体的藻酸盐珠中来成功地从 hiPSCs 分化出功能性肝细胞。所得的包封和分化的肝细胞(E-iHep-Orgs)显示出高水平的白蛋白合成,伴随着甲胎蛋白(AFP)合成的消失,从而表明 E-iHep-Orgs 已经达到了类似于成年肝细胞的高水平成熟。通过 RT-PCR 和免疫荧光的基因表达分析证实了这种成熟。进一步的功能评估表明,它们具有酶活性,包括乳酸盐和氨解毒,以及 I 相和 II 相酶的生物转化活性。这项研究提供了概念验证,证明了将三维技术(引导聚集和微囊化)与肝分化方案相结合的好处,作为生成成熟和功能齐全的肝细胞的一种有力方法,提供了永久性和无限的肝细胞来源。基于这些令人鼓舞的结果,我们从 hiPSCs 产生成熟肝细胞的组合条件可以扩展到人类规模的肝组织工程和生物人工肝(BAL)应用,其中需要大量的生物量。